[0001] The present invention relates to a soil probing device according to the preamble
of claim 1. The present invention also relates to a method for performing a soil probing
operation using such a soil probing device.
[0002] A soil probing device of the type according to the preamble of claim 1 is known from
US 5 902 939. As is generally known in this field a drive mechanism is provided to
push the probing rod into the soil, for example with a clamp which grips the rod and
can be pushed downwards by one or more associated hydraulic cylinders.
[0003] During the probing operation, the probing rod is built up by means of probing rod
sections, which can be linked to one another. Each time the probing rod has been pushed
into the soil by the length of one section, another probing rod section is fastened
to the top of the probing rod. While the probing rod section is being linked up, the
process of pushing the probing rod into the soil can be temporarily stopped, but the
probing process is preferably continued without interruption.
[0004] The measuring probe can, for example, be a penetrometer comprising a cone for measuring
the cone resistance, a friction sleeve for measuring side friction, and optionally
sensors for measuring other parameters such as, for example, probe inclination, equilibrium
water pressure, etc. Alternative designs of the probe are also possible, however.
[0005] In the known probing device the measurement data are transmitted from the probe via
an umbilical cable running through the rod sections linked together from the measuring
probe to the processing and recording apparatus at the surface. One or more fiber
optical cable may form part of this umbilical cable for the optical transmission of
measurement date. The use of such a continuous cable is inconvenient, however, when
the rod sections are being linked up.
[0006] In the case of another known solution, the transmission of the data obtained by the
measuring probe is effected acoustically, acoustic signals propagating through the
material of the probing rod. The most important drawback of this solution is that
the transmitted signal includes a great deal of noise, especially due to machinery,
vehicles, etc. present in the vicinity of the probing operation, thus hampering processing
and analysis of the measured signals.
[0007] It is an object of the present invention to overcome the abovementioned drawbacks.
This object is achieved by a soil probing device according to claim 1. Surprisingly,
the fact that the optical guide is assembled from a plurality of axial sections, with
a junction between each section and the next section, is found not to present a problem.
This arrangement is found to work even in a very simple embodiment in which the rod
sections are attached to one another, for example by means of screw threads, and the
heads of the optical guides in those rod sections come to lie close together or against
one another without further linking means. Another advantage is that the optical guide
itself and the transition of the optical signals from the one guide section to the
other guide section are largely insensitive to moisture, in particular much less sensitive
than any electrical cable and connections. Given that the probing operation often
involves working under damp conditions and below the groundwater level, this is an
important practical advantage.
[0008] Further advantageous embodiments of the soil probing device according to the invention
are described in the claims and in the following description with reference to the
drawing, in which:
Figure 1 schematically shows a soil probing operation by means of a specific example
of a soil probing device according to the invention, and
Figure 2, in a diagram, shows the relevant components of a preferred embodiment of
the soil probing device according to the invention.
[0009] Figure 1 shows a vehicle 1 on which a drive mechanism 2 has been positioned which
is able to exert a downward force on a probing rod 3 in order thus to push the probing
rod 3 into the soil. At the same time, the drive mechanism 2 serves to pull the rod
3 back up from the soil. Disposed at the bottom of the probing rod 3 is a measuring
probe 4.
[0010] During the probing operation, the probing rod 3 is assembled from rod segments 5
which can be axially linked together, a supply of said rod segments being stored in
a magazine 6. Each time the probing rod 3 has been pushed into the soil by a certain
distance, the rod 3 is extended at the top by another rod segment 5. The rod segments
5 have a length, for example, of between 1 and 2 metres, so that many segments 5 will
be linked to one another in the case of a customary probing depth of between 10 and
30 metres. In a practical embodiment the rod sections 5 can be linked by screwthreads
on the ends thereof or the like.
[0011] The probe 4 is provided with measuring means (not shown) for obtaining soil data.
For example, the measuring probe 4 is a standard cone penetrometer with a cone-shaped
cone and an associated dynamometer for measuring the cone resistance when the probing
rod 3 is pushed into the soil.
[0012] The soil probing device further comprises data transmission means for transmitting
soil data obtained by the measuring probe 4 to a location at or near the soil surface,
in this case to processing and recording apparatus 12 mounted in the vehicle 1.
[0013] The data transmission means comprise transmitter means 7 which are located next to
the measuring probe 4 and are designed for feeding data to a guide for transmitting
the data to the apparatus 12 in the vehicle 1. Located next to the top end of the
probing rod 3 are receiver means 8 which are designed for receiving data transmitted
by the transmitter means via the guide.
[0014] Transmission of the data in this case makes use of an optical guide in the probing
rod 3. To this end, each rod section 5 is provided with a optical guide section (not
shown) extending between the axial ends of the probing rod section 5 in such a way
that linking a plurality of rod sections 5 results in the formation of a continuous
optical guide within the probing rod 3. Additionally, the transmitter means and receiver
means 7, 8 are designed for optical data transmission. It proves possible to move
the sections of the optical guide towards one another so that their heads are close
together or abut against each other, in order thus to achieve transmission of the
optical signal from the one optical guide section to the next optical guide section.
[0015] Optionally, lenses are provided at the junctions of the optical guide sections, i.e.
at the axial ends of the rod sections 5, to achieve reliable signal transmission.
The optical guide sections can be made of glass or plastic and may have the shape
of one or more relatively thick rods inside the probing rod which is usually made
of metal, or be in the form of a thin glass fibre, optionally a bundle of glass fibres.
[0016] As described previously, the probing rod 3 is extended at regular intervals during
the probing operation. As the receiver means 8 are located near the top end of the
topmost rod section 5, the optical link is temporarily broken when a new rod section
5 is linked up. The drive mechanism 2 is preferably of a type which allows the probing
operation to be continued while a new section is being linked up, so that the probing
rod 3 will be pushed further and further into the soil. To prevent measuring data
measured by the probe 4 from being lost while a rod section 5 is being linked up,
owing to the break in the optical guide, provision is preferably made for the transmitter
means 7 to comprise a memory which in this case is of such design that during a probing
operation all the measured data are stored and that they can be read after the probing
rod 3 and the probe 4 have been pulled back out from the soil. This allows the data
which have not been received during the breaks in the transmission nevertheless to
be incorporated in the results of the measurements. In one version, the memory is
of such design that measurement data transmitted via the guide are also stored temporarily
in a memory located next to the transmitter means 7 and the transmission of these
data is repeated once or a number of times at a later time, so that measurement data
which have become available during the link-up of a rod section - and the attendant
break in the optical guide - will still be transmitted. To ensure that all this will
function reliably, provision can be made for a time indication corresponding to the
time at which the data were measured to be appended to the measurement data. Using
these data it is therefore possible, in a simple manner, to obtain a continuous series
of measurement data without any gaps.
[0017] It will be obvious that the optical guide can also be used for transmission in the
opposite direction, i.e. from the surface to the measuring probe 4, for example to
control operation of the probe 4 or in order to implement a specific communication
protocol between probe 4 and recording apparatus 12.
[0018] It is also possible for a plurality of parallel optical guides to be provided in
the sections 5 of the probing rod 3, so that different data can be transmitted each
via a separate guide. In view of the large signal transmission capacity of a single
optical guide, it will, however, usually be possible in practice to manage with a
single optical guide.
[0019] Figure 2 shows in more detail the relevant components of the device of Figure 1.
In Figure 2, reference numeral 2 indicates a known drive mechanism by means of which
the probing rod 3 can be pushed into the soil.
[0020] The transmitter means 7 preferably comprise a circuit for conditioning the electrical
signals emitted by the measuring probe 4 and for converting these analog signals into
digital signals. The transmitter means 7 further comprise an optical transmitter and
in this case also an optical receiver for transmitting and receiving optical signals
which may or may not be visible to the eye, and comprise digitized data or control
commands. Also provided next to the transmitter means 7 is the previously discussed
memory. Control of the electronic components and the memory is managed by an associated
microprocessor.
[0021] The transmitter means 7 are preferably accommodated in an associated transmitter
rod section 10 which preferably, at one of its ends, can be detachably linked to the
probe 4 and at its other end can be detachably linked to a rod section 5 which is
provided with a optical guide section. In addition, a supply circuit for the measuring
probe 4 is preferably provided within the transmitter rod section 10.
[0022] Additionally accommodated, by preference, in said transmitter rod section 10 or in
a separate rod section which can be linked thereto, is a rechargeable or replaceable
electrical battery to provide the electrical energy for the abovementioned transmitter
means 7 and possibly for the measuring probe 4.
[0023] In a further version, provision can be made for one or more optical amplifiers to
be used in the stage between the transmitter means 7 and the receiver means 8. Preferably,
separate probing rod sections are provided in which an optical amplifier is accommodated.
In practice, such an amplifier section can then, for example, be positioned every
8 - 12 metres in the probing rod 3 between the rod sections 5. Preferably, each amplifier
section is provided with its own electrical (rechargeable) battery.
[0024] In Figure 2 it can also be seen that the receiver means 8 are not fastened to the
top end of the probing rod 3, although this would be within the scope of the application,
but that provision is made for contactless transmission of the measurement data from
the head of the probing rod to the recording apparatus 12.
[0025] To this end, the receiver means 8 are located at a distance above said probing rod
3 on an associated mount. The receiver means 8 in this case comprise a camera 9 which
is pointed to and focused on the head of the optical guide in the topmost section
5 of the probing rod 3. In a possible embodiment, said camera 9 is mounted so as to
be stationary and is provided with automatic camera focusing which adjusts the camera
9 each time the head of the probing rod 3 is shifted during probing. A system of one
or more lenses can be provided with the camera 9.
[0026] Preferably, the camera 9 is mounted in such a position that it can remain in place
when another section 5 is linked to the top of the probing rod 3. The camera 9 in
this case is linked to a processing unit which converts the optical signals received
and outputs them to recording apparatus 12 not described in any detail.
[0027] As mentioned earlier, the optical guide in the probing rod 3 can also be used for
downward transmission of signals. This could, for example, be a control command in
order to actuate or switch off the measuring probe 4 and/or any amplifier(s) present,
or to control operation thereof. In Figure 2, an optical transmitter unit 11 can be
seen which, whenever a control command is to be sent to the measuring probe 4, is
held at or above the top of the probing rod 3 and is able to emit an optical signal
to the optical guide in the probing rod 3. In a possible embodiment, said transmitter
unit, after the command has been transmitted, is removed again, so that the head of
the probing rod 3 becomes visible to the camera 9. The transmitter unit 11 can, for
example, be sufficiently small to be hand-held.
[0028] It will be evident that the camera 9 can also be mounted at a location other than
that straight above the probing rod 3, particularly if use is made of suitable lenses
and/or reflectors to pass the optical signal from the head of the probing rod 3 to
the camera 9.
[0029] In a possible version, the optical receiver means 8 are, however, positioned directly
on top of the probing rod 3, for example in the form of a handy unit which can readily
be releasably positioned on the head of the probing rod 3. In a possible embodiment
provision is made for the optical signals received to be converted in that unit into
radio signals which can be transmitted without the use of wires, so that the data
can be transmitted from said optical receiver means 8, via a telemetry system, to
the recording apparatus 12. When a new rod section is being linked up, it is then
only necessary for that unit to be temporarily detached and to be placed on top of
the newly linked-up rod section.
1. Soil probing device comprising a plurality of linkable rod sections (5) for the assembly
of a probing rod (3), which probing rod, while being pushed into the soil, is extendable
each time by one or more rod sections (5), further comprising a measuring probe (4)
which is fitted to the probing rod and is provided with measuring means to obtain
data regarding the soil, and further comprising data transmission means (7, 8) which
are designed for transmission of data between the measuring probe (4) and a location
at or near the soil surface, said data transmission means comprising transmitter means
(7) which are located next to or near the measuring probe and are designed for feeding
data to an optical guide within the probing rod (3) for the optical transmission of
the data to receiver means (8) which are located at or near the soil surface and are
designed for receiving data optically transmitted by the transmitter means, characterized in that each rod section (5) is provided with a optical guide section extending essentially
between the ends of the rod section so that linking these rod sections results in
the formation of a continuous optical guide within the probing rod (3).
2. Soil probing device according to claim 1, wherein the transmitter means (7) comprise
memory means for storing measurement data.
3. Soil probing device according to claim 2, wherein the memory means are designed to
store all the measurement data measured during a probing operation.
4. Soil probing device according to one or more of the preceding claims, wherein the
memory means are of such design that measurement data transmitted via the optical
guide are also stored temporarily and the transmission is repeated once or a number
of times at a later time, so that measurement data which have become available during
the link-up of a rod section - and the attendant break in the optical guide - will
still be transmitted.
5. Soil probing device according to one or more of the preceding claims, wherein one
or more rod sections are designed as an amplifier probing rod section containing an
optical amplifier for amplifying the optical signal.
6. Soil probing device according to claim 5, wherein each amplifier probing rod section
is provided with an associated electrical, preferably rechargeable, battery.
7. Soil probing device according to one or more of the preceding claims, wherein the
receiver means are designed for contactless transmission of the signals transmitted
by the optical guide from the top of the probing rod.
8. Soil probing device according to one or more of the preceding claims, wherein the
receiver means comprise a camera (9) which is mounted at a distance from the head
of the probing rod and is designed for receiving optical signals arriving near the
top end of the optical guide.
9. Soil probing device according to claim 8, wherein a mobile, especially a hand-held,
transmitter unit (11) is provided for transmitting optical signals, said transmitter
unit being designed for being placed temporarily above or on the top end of the probing
rod.
10. Soil probing device according to one or more of the preceding claims, wherein the
transmitter means (7) are accommodated in an associated probing rod section.
11. Soil probing device according to one or more of the preceding claims, wherein an electrical
battery is provided in a probing rod section in order to feed the transmitter means
and possibly the measuring probe, in particular in a probing rod section specifically
designed therefor.
12. Probing rod section designed for assembling a probing rod from a plurality of probing
rod sections for the purpose of pushing a probe into the soil, characterized in that the probing rod section is provided with a optical guide, which extends between
the axial ends thereof, for data transmission from the probe to the surface.
13. Probing rod section designed for assembling a probing rod from a plurality of probing
rod sections for the purpose of pushing a probe into the soil, characterized in that the probing rod section is provided with an optical amplifier and an associated
electrical battery.
14. Probing rod section designed for assembling a probing rod from a plurality of probing
rod sections for the purpose of pushing a probe into the soil, characterized in that the probing rod section comprises one or more electrical batteries in order
to feed one or more electrical apparatuses accommodated in linked-up probing rod sections.
15. Soil probing device comprising a drive mechanism for the purpose of pushing into the
soil a probing rod which can be assembled from a plurality of linkable rod sections,
characterized in that a camera is mounted next to the drive mechanism in such a way that said camera
can be pointed at the top end of the probing rod for the purpose of receiving signals,
particularly measurement data, which are transmitted via a optical guide accommodated
in the probing rod.
16. Method for performing a soil probing operation using a soil probing device comprising
a plurality of linkable rod sections (5) for the assembly of a probing rod (3), which
probing rod, while being pushed into the soil, is extended each time by one or more
rod sections (5), further comprising a measuring probe (4) which is fitted to the
probing rod and is provided with measuring means to obtain data regarding the soil,
and further comprising data transmission means (7, 8) which are designed for transmission
of data between the measuring probe (4) and a location at or near the soil surface,
said data transmission means comprising transmitter means (7) which are located next
to or near the measuring probe and are designed for feeding data to an optical guide
within the probing rod for the optical transmission of the data to receiver means
(8) which are located at or near the soil surface and are designed for receiving data
optically transmitted by the transmitter means, characterized in that each rod section (5) is provided with a optical guide section extending between
the ends of the rod section so that linking these rod sections results in the formation
of a continuous optical guide within the probing rod.